College of Engineering, Qufu Normal University, Rizhao 276826, China; State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, China; CAS Key Laboratory of Biobased Materials, System Integration Engineering Center, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, China; Qihe Leahou Chemical Co., Ltd, Dezhou 251100, China.
College of Engineering, Qufu Normal University, Rizhao 276826, China; State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, China.
Int J Biol Macromol. 2024 Aug;274(Pt 1):133159. doi: 10.1016/j.ijbiomac.2024.133159. Epub 2024 Jun 14.
Soft ionic conductors exhibit immense potential for applications in soft ionotronics, including ionic skin, human-machine interface, and soft luminescent device. Nevertheless, the majority of ionogel-based soft ionic conductors are plagued by issues such as freezing, evaporation, liquid leakage, and inadequate self-healing capabilities, thereby constraining their usability in complex environments. In this study, we present a novel strategy for fabricating conductive ionogels through the proportionally mixing cationic guar gum (CGG), water, 1-butyl-3-methylimidazolium chloride (BmimCl)/glycerol eutectic-based ionic liquid, and poly(3,4-ethylenedioxythiophene)/lignosulfonate (PEDOT/LS). The resultant benefits from strong hydrogen bonding and electrostatic interactions among its constituents, endowing it with an ultrafast self-healing capability (merely 30 s) while sustaining high electrical conductivity (~16.5 mS cm). Moreover, it demonstrates exceptional water retention (62 % over 10 days), wide temperature tolerance (-20 to 60 °C), and injectability. A wearable sensor fabricated from this ionogel displayed remarkable sensitivity (gauge factor = 17.75) and a rapid response to variations in strain, pressure, and temperature, coupled with both long-term stability and wide working temperature range. These attributes underscore its potential for applications in healthcare devices and flexible electronics.
软性离子导体在软离子电子学中有广泛的应用潜力,包括离子皮肤、人机界面和软性发光器件。然而,大多数基于离子凝胶的软性离子导体存在着冻结、蒸发、液体泄漏和自我修复能力不足等问题,从而限制了它们在复杂环境中的可用性。在这项研究中,我们提出了一种通过比例混合阳离子瓜尔胶(CGG)、水、1-丁基-3-甲基咪唑氯(BmimCl)/甘油共晶基离子液体和聚(3,4-亚乙基二氧噻吩)/木质素磺酸盐(PEDOT/LS)来制备导电离子凝胶的新策略。其得益于其成分之间的强氢键和静电相互作用,具有超快的自我修复能力(仅 30 秒),同时保持高电导率(约 16.5 mS cm)。此外,它还具有出色的保水能力(10 天内保持 62%)、宽温度容忍度(-20 至 60°C)和可注射性。由这种离子凝胶制成的可穿戴传感器表现出出色的灵敏度(灵敏度系数为 17.75),能够快速响应应变、压力和温度的变化,同时具有长期稳定性和宽工作温度范围。这些特性突出了其在医疗保健设备和柔性电子产品中的应用潜力。